Poster: ParkMaster: Leveraging Edge Computing in Visual Analytics

Giulio Grassi, Matteo Sammarco, P. Bahl, K. Jamieson, G. Pau
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引用次数: 9

Abstract

In this work we propose ParkMaster, a low-cost crowdsourcing architecture which exploits machine learning techniques and vision algorithms to evaluate parking availability in cities. While the user is normally driving ParkMaster enables off the shelf smartphones to collect information about the presence of parked vehicles by running image recognition techniques on the phones camera video streaming. The paper describes the design of ParkMaster's architecture and shows the feasibility of deploying such mobile sensor system in nowadays smartphones, in particular focusing on the practicability of running vision algorithms on phones.
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海报:ParkMaster:在视觉分析中利用边缘计算
在这项工作中,我们提出了ParkMaster,这是一个低成本的众包架构,它利用机器学习技术和视觉算法来评估城市中的停车位可用性。当用户正常驾驶时,ParkMaster使现成的智能手机能够通过在手机上运行图像识别技术来收集有关停放车辆存在的信息。本文描述了ParkMaster的架构设计,并展示了在当今智能手机中部署这种移动传感器系统的可行性,特别关注在手机上运行视觉算法的实用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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